• Journal of Inorganic Materials
  • Vol. 36, Issue 11, 1185 (2021)
Yachen ZHANG1、2, Jia MENG1、*, Kun CAI3, Xiaochen SHENG1, Jun LE1, and Lixin SONG1、2、*
Author Affiliations
  • 11. Key Laboratory of Inorganic Coating Materials CAS, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 201899, China
  • 22. School of Physical Science and Technology (SPST), ShanghaiTech University, Shanghai 201210, China
  • 33. Beijing Institute of Control Engineering, China Academy of Space Technology, Beijing 100080, China
  • show less
    DOI: 10.15541/jim20210032 Cite this Article
    Yachen ZHANG, Jia MENG, Kun CAI, Xiaochen SHENG, Jun LE, Lixin SONG. Bending Failure Mechanism Study of Si-Cr-Ti High Temperature Oxidation Resistance Coating via Acoustic Emission Technique [J]. Journal of Inorganic Materials, 2021, 36(11): 1185 Copy Citation Text show less
    References

    [1] T NARITA, Z THOSIN K, L FENGQUN et al. Development of Re-based diffusion barrier coatings on nickel-based superalloys. Materials and Corrosion-Werkstoffe und Korrosion, 56, 923-929(2005).

    [2] P RODHAMMER, W KNABL, C SEMPRIMOSCHNIG et al. Protection of Nb-based and Ta-based alloys against high- temperature oxidation. International Journal of Refractory Metals & Hard Materials, 12, 283-293(1994).

    [4] C BOUILLET, D CIOSMAK, M LALLEMANT et al. Oxidation of niobium sheets at high temperature. Solid State Ionics, 101, 819-824(1997).

    [5] O HELLWIG, H ZABEL. Oxidation of Nb(110) thin films on a-plane sapphire substrates: an X-ray study. Physica B, 283, 228-231(2000).

    [7] R TANAKA, A KASAMA, M FUJIKURA et al. Newly Developed Niobium-based Superalloys for Elevated Temperature Application. Warrendale: Minerals, Metals & Materials Soc, Swiss: TMS, 89-98(2004).

    [8] YU WANG, JIAPING GAO, YUNPENG LI et al. Microstructure and oxidation-resistance of silicide coatings on C-103 niobium alloys. Journal of Inorganic Materials, 15, 143-149(2000).

    [10] A LORIA E. Niobium-base superallloys via powder-metallurgy technology. Journal of Metals, 39, 22-26(1987).

    [11] A PERKINS R, H MEIER G. The oxidation behavior and protection of niobium. JOM-Journal of the Minerals Metals & Materials Society, 42, 17-21(1990).

    [17] Q MA X, S CHO, M TAKEMOTO. Acoustic emission source analysis of plasma sprayed thermal barrier coatings during four-point bend tests. Surface & Coatings Technology, 139, 55-62(2001).

    [18] L WANG, C MING, H ZHONG X et al. Prediction of critical rupture of plasma-sprayed yttria stabilized zirconia thermal barrier coatings under burner rig test via finite element simulation and in-situ acoustic emission technique. Surface & Coatings Technology, 367, 58-74(2019).

    [19] L YANG, C ZHONG Z, J YOU et al. Acoustic emission evaluation of fracture characteristics in thermal barrier coatings under bending. Surface & Coatings Technology, 232, 710-718(2013).

    [20] L YANG, C ZHONG Z, C ZHOU Y et al. Acoustic emission assessment of interface cracking in thermal barrier coatings. Acta Mechanica Sinica, 32, 342-348(2016).

    [21] B YAO W, Y DAI C, G MAO W et al. Acoustic emission analysis on tensile failure of air plasma-sprayed thermal barrier coatings. Surface & Coatings Technology, 206, 3803-3807(2012).

    [22] G MAO W, J WU D, B YAO W et al. Multiscale monitoring of interface failure of brittle coating/ductile substrate systems: a non-destructive evaluation method combined digital image correlation with acoustic emission. Journal of Applied Physics, 110, 5(2011).

    [23] L WANG, X NI J, F SHAO et al. Failure behavior of plasma-sprayed yttria-stabilized zirconia thermal barrier coatings under three-point bending test via acoustic emission technique. Journal of Thermal Spray Technology, 26, 116-131(2017).

    [24] L WANG, D WANG H, L DI Y et al. Research on strain distribution and damage behavior of thermal barrier coatings based on digital image correlation. International Journal of Applied Ceramic Technology, 17, 2156-2161(2020).

    [25] W ZHU, Q WU, L YANG et al. In situ characterization of high temperature elastic modulus and fracture toughness in air plasma sprayed thermal barrier coatings under bending by using digital image correlation. Ceramics International, 46, 18526-18533(2020).

    [26] S MAJEWSKI M, C KELLEY, W HASSAN et al. Laser induced breakdown spectroscopy for contamination removal on engine-run thermal barrier coatings. Surface & Coatings Technology, 205, 4614-4619(2011).

    [27] A MANERO, A SELIMOV, Q FOULIARD et al. Piezospectroscopic evaluation and damage identification for thermal barrier coatings subjected to simulated engine environments. Surface & Coatings Technology, 323, 30-38(2017).

    [28] C RINALDI, L DE MARIA, M MANDELLI. Assessment of the spent life fraction of gas turbine blades by coating life modeling and photostimulated luminescence piezospectroscopy. Journal of Engineering for Gas Turbines and Power-Transactions of the Asme, 132, 4(2010).

    [29] X WANG, A ATKINSON, L CHIRIVI et al. Evolution of stress and morphology in thermal barrier coatings. Surface & Coatings Technology, 204, 3851-3857(2010).

    [30] X WANG, G LEE, A ATKINSON. Investigation of TBCs on turbine blades by photoluminescence piezospectroscopy. Acta Materialia, 57, 182-195(2009).

    [31] B JAYARAJ, S VISHWESWARAIAH, H DESAI V et al. Electrochemical impedance spectroscopy of thermal barrier coatings as a function of isothermal and cyclic thermal exposure. Surface & Coatings Technology, 177, 140-151(2004).

    [32] J THORNTON, D COOKSON, E PESCOTT. The measurement of strains within the bulk of aged and as-sprayed thermal barrier coatings using synchrotron radiation. Surface & Coatings Technology, 120, 96-102(1999).

    [33] L YU F, D BENNETT T. Phase of thermal emission spectroscopy for properties measurements of delaminating thermal barrier coatings. Journal of Applied Physics, 98, 8(2005).

    [34] L DAVIES D, BOULDIN DON. A cluster separation measure. IEEE Trans. Pattern Anal. Mach. Intell., PAMI-1, 224-227(1979).

    [35] M BENSON P, S VINCIGUERRA, G MEREDITH P et al. Laboratory simulation of volcano seismicity. Science, 322, 249-252(2008).

    [36] L YANG, C ZHOU Y, C LU. Damage evolution and rupture time prediction in thermal barrier coatings subjected to cyclic heating and cooling: an acoustic emission method. Acta Materialia, 59, 6519-6529(2011).

    [37] L YANG, C ZHOU Y, G MAO W et al. Real-time acoustic emission testing based on wavelet transform for the failure process of thermal barrier coatings. Applied Physics Letters, 93, 299(2008).

    [40] B GUTENBERG, F RICHTER C. Frequency of earthquakes in Califonia. Bulletin of the Seismological Society of America, 34, 185-188(1944).

    [41] S COLOMBO, G MAIN I, C FORDE M. Assessing damage of reinforced concrete beam using “ b-value” analysis of acoustic emission signals. Journal of Materials in Civil Engineering, 15, 280-286(2003).

    [42] D COX S J, G MEREDITH P. Microcrack formation and material softening in rock measured by monitoring acoustic emissions. International Journal of Rock Mechanics and Mining Sciences & Geomechanics Abstracts., 30, 11-24(1993).

    Yachen ZHANG, Jia MENG, Kun CAI, Xiaochen SHENG, Jun LE, Lixin SONG. Bending Failure Mechanism Study of Si-Cr-Ti High Temperature Oxidation Resistance Coating via Acoustic Emission Technique [J]. Journal of Inorganic Materials, 2021, 36(11): 1185
    Download Citation